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3 years ago

What is the momentum of a 20.0kg scooter traveling at 5.00 m/s?

Mathematics

1 answer:

JulijaS [17]3 years ago

8 0

Im pretty sure its D.) 100 kg m/s

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Please help mee!!! Will give brainliest!

JulijaS [17]

It is B) 11 + 7 = 18,

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3 years ago

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Here is the real problem ! Giving 30 points!

Sergeeva-Olga [200]

Answer:

A. the one in the table because after two hours it is the size of the one that began at 20 cm

B. the one describes by the graph because after 10 hours it would be 0 cm and the one described by the equation would be 5 cm

C. the one described by the graph will burn out in 10 hours as shown in the graph and the one described by the equation will burn out in 12 hours

Step-by-step explanation:

i hope this helps

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3 years ago

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What is the value of x in the following system y=3x-5 6x+3y=15

gregori [183]

Answer:

the answer will be y=1

Step-by-step explanation:

If you plug in (3x-5) in for y in the 6x+3y=15, you will get 6x+9x-15=15. Add the like terms (6x+9x) and get 15x. Bring the -15=15 down. Add 15 to the other 15 on the other side of the equal sign, bring 15x down and then divide 15 by 30 and get x=2. Plug in 2 for x in the (3x-5) equation, then solve and the answer will be y=1.

7 0

3 years ago

Help with geometry hw

tiny-mole [99]

QUESTION 1

Let the third side of the right angle triangle with sides $x,6$ be $l$ .

Then, from the Pythagoras Theorem;

$l^2=x^2+6^2$

$l^2=x^2+36$

Let the hypotenuse of the right angle triangle with sides 2,6 be $m$ .

Then;

$m^2=6^2+2^2$

$m^2=36+4$

$m^2=40$

Using the bigger right angle triangle,

$(x+2)^2=m^2+l^2$

$\Rightarrow (x+2)^2=40+x^2+36$

$\Rightarrow x^2+2x+4=40+x^2+36$

Group similar terms;

$x^2-x^2+2x=40+36-4$

$\Rightarrow 2x=72$

$\Rightarrow x=36$

QUESTION 2

Let the hypotenuse of the triangle with sides (x+2),4 be $k$ .

Then, $k^2=(x+2)^2+4^2$

$\Rightarrow k^2=(x+2)^2+16$

Let the hypotenuse of the right triangle with sides 2,4 be $t$ .

Then; we have $t^2=2^2+4^2$

$t^2=4+16$

$t^2=20$

We apply the Pythagoras Theorem to the bigger right angle triangle to obtain;

$[(x+2)+2]^2=k^2+t^2$

$(x+4)^2=(x+2)^2+16+20$

$x^2+8x+16=x^2+4x+4+16+20$

$x^2-x^2+8x-4x=4+16+20-16$

$4x=24$

$x=6$

QUESTION 3

Let the hypotenuse of the triangle with sides (x+8),10 be $p$ .

Then, $p^2=(x+8)^2+10^2$

$\Rightarrow p^2=(x+8)^2+100$

Let the hypotenuse of the right triangle with sides 5,10 be $q$ .

Then; we have $q^2=5^2+10^2$

$q^2=25+100$

$q^2=125$

We apply the Pythagoras Theorem to the bigger right angle triangle to obtain;

$[(x+8)+5]^2=p^2+q^2$

$(x+13)^2=(x+8)^2+100+125$

$x^2+26x+169=x^2+16x+64+225$

$x^2-x^2+26x-16x=64+225-169$

$10x=120$

$x=12$

QUESTION 4

Let the height of the triangle be H;

Then $H^2+4^2=8^2$

$H^2=8^2-4^2$

$H^2=64-16$

$H^2=48$

Let the hypotenuse of the triangle with sides H,x be r.

Then;

$r^2=H^2+x^2$

This implies that;

$r^2=48+x^2$

We apply Pythagoras Theorem to the bigger triangle to get;

$(4+x)^2=8^2+r^2$

This implies that;

$(4+x)^2=8^2+x^2+48$

$x^2+8x+16=64+x^2+48$

$x^2-x^2+8x=64+48-16$

$8x=96$

$x=12$

QUESTION 5

Let the height of this triangle be c.

Then; $c^2+9^2=12^2$

$c^2+81=144$

$c^2=144-81$

$c^2=63$

Let the hypotenuse of the right triangle with sides x,c be j.

Then;

$j^2=c^2+x^2$

$j^2=63+x^2$

We apply Pythagoras Theorem to the bigger right triangle to obtain;

$(x+9)^2=j^2+12^2$

$(x+9)^2=63+x^2+12^2$

$x^2+18x+81=63+x^2+144$

$x^2-x^2+18x=63+144-81$

$18x=126$

$x=7$

QUESTION 6

Let the height be g.

Then;

$g^2+3^2=x^2$

$g^2=x^2-9$

Let the hypotenuse of the triangle with sides g,24, be b.

Then

$b^2=24^2+g^2$

$b^2=24^2+x^2-9$

$b^2=576+x^2-9$

$b^2=x^2+567$

We apply Pythagaoras Theorem to the bigger right triangle to get;

$x^2+b^2=27^2$

This implies that;

$x^2+x^2+567=27^2$

$x^2+x^2+567=729$

$x^2+x^2=729-567$

$2x^2=162$

$x^2=81$

Take the positive square root of both sides.

$x=\sqrt{81}$

$x=9$

QUESTION 7

Let the hypotenuse of the smaller right triangle be; n.

Then;

$n^2=x^2+2^2$

$n^2=x^2+4$

Let f be the hypotenuse of the right triangle with sides 2,(x+3), be f.

Then;

$f^2=2^2+(x+3)^2$

$f^2=4+(x+3)^2$

We apply Pythagoras Theorem to the bigger right triangle to get;

$(2x+3)^2=f^2+n^2$

$(2x+3)^2=4+(x+3)^2+x^2+4$

$4x^2+12x+9=4+x^2+6x+9+x^2+4$

$4x^2-2x^2+12x-6x=4+9+4-9$

$2x^2+6x-8=0$

$x^2+3x-4=0$

$(x-1)(x+4)=0$

$x=1,x=-4$

We are dealing with length.

$\therefore x=1$

QUESTION 8.

We apply the leg theorem to obtain;

$x(x+5)=6^2$

$x^2+5x=36$

$x^2+5x-36=0$

$(x+9)(x-4)=0$

$x=-9,x=4$

We discard the negative value;

$\therefore x=4$

QUESTION 9;

We apply the leg theorem again;

$10^2=x(x+15)$

$100=x^2+15x$

$x^2+15x-100=0$

Factor;

$(x-5)(x+20)=0$

$x=5,x=-20$

Discard the negative value;

$x=5$

QUESTION 10

According to the leg theorem;

The length of a leg of a right triangle is the geometric mean of the lengths of the hypotenuse and the portion of the hypotenuse adjacent to that leg.

We apply the leg theorem to get;

$8^2=16x$